EP3344876B1 - Elektrische kühlmittelpumpe mit strömungsgekühlter steuerschaltung - Google Patents

Elektrische kühlmittelpumpe mit strömungsgekühlter steuerschaltung Download PDF

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Publication number
EP3344876B1
EP3344876B1 EP16757006.8A EP16757006A EP3344876B1 EP 3344876 B1 EP3344876 B1 EP 3344876B1 EP 16757006 A EP16757006 A EP 16757006A EP 3344876 B1 EP3344876 B1 EP 3344876B1
Authority
EP
European Patent Office
Prior art keywords
pump
chamber
electric
housing
coolant pump
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
EP16757006.8A
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German (de)
English (en)
French (fr)
Other versions
EP3344876A1 (de
Inventor
Franz Pawellek
Jens Hoffmann
Christian BÄTZ
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nidec GPM GmbH
Original Assignee
Nidec GPM GmbH
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Nidec GPM GmbH filed Critical Nidec GPM GmbH
Priority to PL16757006T priority Critical patent/PL3344876T3/pl
Publication of EP3344876A1 publication Critical patent/EP3344876A1/de
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Publication of EP3344876B1 publication Critical patent/EP3344876B1/de
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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/58Cooling; Heating; Diminishing heat transfer
    • F04D29/586Cooling; Heating; Diminishing heat transfer specially adapted for liquid pumps
    • F04D29/588Cooling; Heating; Diminishing heat transfer specially adapted for liquid pumps cooling or heating the machine
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D13/00Pumping installations or systems
    • F04D13/02Units comprising pumps and their driving means
    • F04D13/06Units comprising pumps and their driving means the pump being electrically driven
    • F04D13/0686Mechanical details of the pump control unit
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D13/00Pumping installations or systems
    • F04D13/02Units comprising pumps and their driving means
    • F04D13/06Units comprising pumps and their driving means the pump being electrically driven
    • F04D13/0693Details or arrangements of the wiring
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/02Selection of particular materials
    • F04D29/026Selection of particular materials especially adapted for liquid pumps
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/58Cooling; Heating; Diminishing heat transfer
    • F04D29/5813Cooling the control unit
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/58Cooling; Heating; Diminishing heat transfer
    • F04D29/586Cooling; Heating; Diminishing heat transfer specially adapted for liquid pumps
    • F04D29/5893Cooling; Heating; Diminishing heat transfer specially adapted for liquid pumps heat insulation or conduction
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/60Mounting; Assembling; Disassembling
    • F04D29/62Mounting; Assembling; Disassembling of radial or helico-centrifugal pumps
    • F04D29/624Mounting; Assembling; Disassembling of radial or helico-centrifugal pumps especially adapted for elastic fluid pumps
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K11/00Structural association of dynamo-electric machines with electric components or with devices for shielding, monitoring or protection
    • H02K11/30Structural association with control circuits or drive circuits
    • H02K11/33Drive circuits, e.g. power electronics
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01PCOOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
    • F01P5/00Pumping cooling-air or liquid coolants
    • F01P5/10Pumping liquid coolant; Arrangements of coolant pumps
    • F01P5/12Pump-driving arrangements
    • F01P2005/125Driving auxiliary pumps electrically
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05DINDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
    • F05D2300/00Materials; Properties thereof
    • F05D2300/50Intrinsic material properties or characteristics
    • F05D2300/502Thermal properties
    • F05D2300/5024Heat conductivity

Definitions

  • the present invention relates to an electric coolant pump with a control circuit, which is cooled by the flow.
  • a thermal management of an internal combustion engine provides, during a cold start phase, first of all to completely and subsequently to prevent heat emipation.
  • a problem when using electric coolant pumps is the sufficient cooling of the control electronics within the coolant pump, which represents a significant factor for the life of the coolant pump and also for the reliability of the internal combustion engine and the reliability of the driven vehicle.
  • the coolant temperature may in critical circumstances approach very close to the maximum permissible temperature of the electronic components of the control circuit of the electric motor of the pump, so that even with additional waste heat of the electric pump motor itself a failure of the control circuit overheating threatens.
  • the power loss is about 20% of the electrical power, so that in a pump motor with 500 W, as used for example in a coolant pump of a coolant circuit in a car, at full load operation, a heat input of 100 W is produced by the Coolant pump is additionally recorded on the waste heat of the coolant addition.
  • the components of the electric motor reach temperatures above 200 ° C.
  • coolant pumps which use a heat exchange with the coolant of the internal combustion engine to maintain the permissible operating temperature of the electronic components.
  • the coolant has a much higher coefficient of thermal conductivity of about 0.441 W / mK compared to 0.0262 W / mK air.
  • it maintains a defined temperature range, whereas the temperature of the air varies greatly depending on the environment, in particular of the internal combustion engine, and possibly on a speed of movement.
  • the US Pat. No. 6,082,974 B1 describes a motor pump having a chamber disposed adjacent to an inlet and an outlet of the pump and adapted to receive a controller.
  • the coolant when using a pump as a coolant pump of an internal combustion engine, the coolant receives a high temperature during operation of the internal combustion engine and thus already introduces itself a high heat input into the coolant pump.
  • the coolant After passing through the radiator or a heat exchanger with the environment, the coolant should still have a maximum temperature of up to 113 ° C, according to automotive industry standards. However, in heavy duty applications, extreme ambient temperatures, or in adverse circumstances, for example, the coolant in a coolant circuit of an internal combustion engine in a vehicle may reach a temperature of 120 ° C or even 130 ° C.
  • the coolant pump is usually installed to save space in the immediate vicinity of the internal combustion engine. Consequently, the coolant pump is exposed by the waste heat of the internal combustion engine heating with again considerably higher ambient temperature.
  • the DE 11 2013 003 549 T5 describes a coolant pump for automotive applications with a donut-shaped control circuit which is adjacent to a radial pump chamber at the axial height of the impeller.
  • the pump is equipped with a wet-running motor and is separated from the pump chamber by a wet bushing.
  • the donut-shaped control circuit is housed together with the stator of the wet rotor and is therefore exposed to its waste heat.
  • the EP 2 607 709 A1 discloses an electric drive motor, in particular for a pump unit.
  • a terminal box or an electronics housing for electrical and / or electronic components for controlling the electric drive motor is arranged on the electric drive motor and is in its geometric Basic form formed of several sections, which together form the overall shape or overall shape of the terminal box.
  • the EP 1 635 069 A1 discloses a pump assembly including an electric motor and an electric or electronic engine control component mounted such that a major surface thereof extends parallel to an axis of rotation of the electric motor.
  • the JP 2004 316548 A shows a liquid pump with a flow-cooled control circuit and a low axial height.
  • the control circuit is disposed on the outside of the pump housing around the inlet of the pump on the opposite side of the motor.
  • an electric coolant pump according to claim 1. This is particularly characterized in that the open side of the pump chamber and the opened side of the ECU chamber are separated by a heat exchange cover which is opened at an opening of an inlet into the pump chamber; wherein a material from which the ECU chamber is formed has a lower thermal conductivity than a material from which the heat exchange cover and the spiral housing portion is formed.
  • the invention thus provides, for the first time, a control circuit which on the side of the pump housing, which is opposite to the electric motor and arranged around the inlet, is separated from the convection-rich delivery flow in the pump chamber by a heat exchange cover.
  • control circuit is cooled on the one hand by the flow, and on the other hand is isolated from the even higher ambient temperatures in the immediate vicinity of the internal combustion engine.
  • the closely adjacent arrangement of the heat exchange cover and the control circuit to the impeller also provides a thermal bridge with a short distance of the temperature gradient.
  • the control circuit is arranged separately and does not absorb waste heat from the electric motor.
  • the coolant pump according to the invention further brings with it advantages for easier assembly thereof.
  • an open-plan pump chamber of the electric motor on the one hand and in particular the impeller on the other hand freely accessible for mounting.
  • control circuit By arranging the control circuit around the inlet of the coolant pump, a smaller axial dimension than that of an arrangement thereof is realized on an outside of the electric motor.
  • This aspect is a not insignificant advantage in automotive applications, in which an increased restriction of the installation space prevails due to the increasing number of auxiliary units in an engine compartment.
  • the heat exchange cover made of aluminum or an aluminum alloy.
  • Aluminum is characterized by a good thermal conductivity and at the same time has sufficient protection against corrosion.
  • the ECU chamber may be formed in a molded plastic part.
  • the control circuit can be isolated in production-favorable manner from the hot ambient temperatures on the engine and isolated from moisture and dirt.
  • the spiral housing section made of aluminum or an aluminum alloy, which are suitable for a die-casting, injection molding or 3D printing process manufacturing technology.
  • a die-cast alloy facilitates the manufacture of the characteristic shape of the spiral housing.
  • the thermal conductivity of the material in the region of the pump housing favors a temperature pickup at the interfaces to the engine assembly and the ECU chamber and an introduction of the recorded temperature in the circulating flow therein.
  • an unpopulated side of a circuit carrier of the control circuit may be in areal contact with the heat exchange cover.
  • the circuit carrier of the control circuit may be a stamped grid.
  • the use of a stamped grid instead of a circuit board allows without potting compound, cavities, internal plug, crimp or clamped connections improved heat transfer of the electronic components on the heat exchange cover.
  • control circuit may comprise a printed circuit board which is preferably held in the ECU chamber by means of electrically connecting pins spaced from the circuit carrier.
  • control circuit for the component of a logic circuit has a printed circuit board, can be separated by a contact pins spaced arrangement of the Circuit board in the room, a shield of the other components are bypassed to the heat exchange surface of the heat exchange cover.
  • the impeller may be formed as an impeller with a central flow opening and radial outlet openings, and have between the flow opening and the radial outlet openings in the radial and axial directions of pronounced steps.
  • the heat exchange cover may have radially alternating projections and recesses, wherein a projection and an adjacent recess each radially associated with a step of the axially opposite Pumpenraisingrads, and axial characteristics of the projections to the associated stages are complementarily stepped, so that between the associated projections and steps Gap is formed.
  • the complementary step in conjunction with the annular recesses creates a labyrinth seal between the impeller and the mouth of the inlet into the heat exchange cover.
  • a leakage flow which branches off radially outward on the end face of the impeller from the inflowing flow, is braked in a bypass of the impeller by radially alternating pressure zones when passing through the gaps on the projections and the capillary acting adjacent recesses.
  • the labyrinth seal counteracts a pressure of the accelerated coolant in the spiral housing, so that no return flow past the impeller, which would affect the flow.
  • the labyrinth seal improves the volumetric efficiency of the pump.
  • the labyrinth seal improves heat transfer through the enlarged surface along the projections and recesses.
  • the heat exchange cover may have a collar which encloses the inlet and / or forms the mouth of the inlet.
  • a collar which encloses the inlet and / or forms the mouth of the inlet.
  • the ECU chamber and the inlet may be integrally formed. As a result, the number of manufactured components and the assembly costs can be reduced.
  • the electric coolant pump may include a bus bar extending through a channel in the pump housing and establishing an electrical connection between the control circuit and a stator of the electric motor.
  • the bus bar By the bus bar, the insertion of the pump housing on the motor assembly, and in particular the passage of the motor leads to the opposite side of the pump housing is facilitated during assembly of the pump.
  • a clearance may remain between an inner surface portion of the channel and an outer surface portion of the bus bar to allow pressure equalization between an interior of a motor housing and the ECU chamber.
  • the ECU chamber may have an opening which is closed by a liquid-tight and gas-open membrane.
  • an overpressure which may result in particular from the pressure equalization of the heated engine assembly, be degraded in the ECU chamber, without being registered in a later cooling moisture.
  • the electric coolant pump may include a metal gasket between the pump housing and the heat exchange cover.
  • a metal gasket has a mounting technology suitable elasticity, the tightening of the heat exchange cover by means of flange screws, which at the Scope are distributed, allowing a precise adjustment of the gap between the heat exchange cover and the impeller in the labyrinth seal.
  • the electric coolant pump may have a lip seal between the pump housing and the pump shaft.
  • the lip seal allows adequate sealing of the pump chamber below the impeller with respect to the bearing of the pump shaft on the pump housing.
  • a lip seal is characterized by a lower frictional torque than that of a commonly used mechanical seal for water pumps, i. a spring-loaded mechanical seal is the case.
  • the electric coolant pump may include an aluminum leakage seal between the pump housing and the electric motor.
  • the housing of the motor assembly need not be encapsulated or closed, and a wall to the end of the motor assembly may be omitted.
  • the aluminum leak seal which is inserted on the pump housing prior to assembly of the electric motor, shuts off the open side to the engine components against possible leakage of coolant from the pump housing.
  • the thermal conductivity of the sealing material at the interface of the pump housing promotes the heat transfer of the motor assembly to the spiral housing portion, which is preferably made of die-cast aluminum, and further introduces the heat in the flow.
  • a motor housing by means of which the electric motor is attached to the pump housing, made of aluminum.
  • the thermal conductivity of the motor housing in turn promotes the heat transfer from the motor group to the pump housing.
  • a leakage chamber can be formed between an end face of the electric motor and an opposite contour of the spiral housing section in the pump housing.
  • the leakage chamber forms a cavity defined by the leakage seal from the open side of the Motor assembly is disconnected.
  • the leakage chamber, together with the leakage seal, can achieve a suspending, dehumidifying effect if slight leakage in the form of drops of the coolant into the motor assembly should occur due to wear of the lip seal.
  • the coolant pump in the axial direction of the pump consists essentially of three sections, namely the assembly of the electric motor 2, the pump housing 1 and the control circuit 3 and the ECU chamber 30 with an integrated inlet 13 together.
  • the sections are connected during assembly of the pump by bolts 40 which are inserted in the axial direction.
  • FIG Fig. 3 A separated view of the individual components of the described embodiment is shown in FIG Fig. 3 shown.
  • an electric motor 2 with a stator 25 and a rotor 26 is mounted on one side of the pump housing 1.
  • the electric motor 2 is enclosed by a motor housing 27, which is flanged by means of the bolts 40 to the pump housing 1.
  • the motor housing 27 is open at the end face assigned to the pump housing 1. Between the motor assembly and the pump housing, a leakage seal 41 is inserted.
  • the bus bar 35 leads in leads of the electric motor 2 to excite the stator coils of the stator 25, which are controlled by a power electronics.
  • the pump housing 1 comprises a channel 15 into which the bus bar 35 is inserted when the motor assembly is flanged to the pump housing 1. Through the channel 15, the bus bar extends protected against external corrosive influences in the interior of the pump housing 1 and provides on the opposite side of the pump housing 1 corresponding lead contacts of the electric motor 2 ready.
  • the pump housing 1 comprises on the part of the electric motor 2 a receptacle for a ball bearing 28 on which the pump shaft 21 is supported in an inlet region in the pump housing 1 against the same and rotatably supported. This is followed in the pump housing 1 in the axial direction of a pump chamber 10, in which the free end of the pump shaft 21 extends into it. On the free end of the pump shaft 21, a Radialpumpenngerrad, hereinafter referred to as an impeller 20, fixed, which is rotatably received in the pump chamber 10. Between the pump shaft 21 and its inlet opening in the pump chamber 10, a lip seal 42 is inserted.
  • the impeller 20 is a radially accelerating pump impeller with a central flow opening 22, through which the flow is sucked from the inlet 13 of the coolant pump. Downstream of the skirt portion are chamber-like outlet openings 24 of the impeller 20 which are separated by internal vanes which begin below the inlet 22 and extend to the Outlet openings 25 extend radially outward.
  • the pump chamber 10 is surrounded by a, for a radial pump characteristic, spiral housing portion 11.
  • the spiral housing section 11 receives the radially accelerated flow from the impeller 20 and directs it in a circumferential spiral channel through the outlet 12 out of the coolant pump.
  • the spiral casing portion 11 as well as the outlet 12 and the remaining part of the pump casing 1 are made of a die cast alloy.
  • the pump chamber 10 is opened on the opposite side of the electric motor 2. Between the open side and the inlet 13 of the coolant pump, the pump chamber 10 is closed by a pump cover, which is also referred to below as a heat exchange cover 31. In addition to the front end of the pump chamber 10, the heat exchange cover 31 at an opening upstream of the impeller 20 provides a mouth receptacle for the inlet 13 ready.
  • a pump cover which is also referred to below as a heat exchange cover 31.
  • Radial projections 32a and recesses 32b on the heat exchange cover 31 are incorporated in the opposite mouth region of the inlet 13 complementary to the steps 23 of the impeller 20.
  • the gradation of the axial extent of the projections 32a corresponds to the gradation of the steps 23 of the impeller 20.
  • the recesses 32b are each axially recessed radially outwardly adjacent to each of the projections 32a in the heat exchange cover 31.
  • a radial width of the projections 32a, recesses 32b and stages 23 is coordinated with each other, each associated with a projection 32a and a recess 32b of the heat exchange cover 31 of a step 23 of the impeller 20.
  • an inner radius of the orifice of the heat exchange cover 31 covers an inner radius of the flow opening 22 of the impeller 20.
  • the number of protrusions 32a and recesses 32b increase the surface of the heat exchange cover 31 ready for heat transfer to the pump chamber 10, and filling of the coolant in the recesses 32b undergoes a steady replacement by a leakage current.
  • the heat exchange cover 31 is milled from aluminum in the present embodiment. Further suitable for the heat exchange cover 31 metals with a good thermal conductivity and corrosion resistance, such as aluminum.
  • a metal gasket 43 is inserted between the heat exchange cover 31 and the pump housing 1.
  • a metal gasket 43 is inserted between the heat exchange cover 31 and the pump housing 1.
  • the control circuit 3 is applied directly to the heat exchange cover 31 and fixed for example by a thermal paste.
  • a support of the control circuit 3 from a stamped grid 34 with a metallic core which improves in particular the heat transfer of power electronics on the heat exchange cover.
  • the control circuit 3 comprises a logic circuit which is printed on a printed circuit board 36.
  • the circuit board 36 of the logic printed circuit is electrically connected via pins 37 to the lead frame 34 and kept spaced therefrom.
  • the control circuit 3 is accommodated in the ECU chamber 30, which closes the heat exchange cover 31 to the outside.
  • the ECU chamber 30 is integrally formed with the inlet 13, as in FIG Fig. 2 is shown, and it is made of plastic, for example.
  • the bus bar 35 extends through openings in the heat exchange cover 31 and the lead frame 34. Contacts, which are associated with the leads of the electric motor 2, are connected in a low-assembly manner by spring contacts with the power electronics of the control circuit 3.
  • the motor assembly is sealed by a lip seal 42 and an aluminum leakage seal 41.
  • the lip seal 42 sits on the Pumping shaft 21 between the ball bearing 28 and the pump chamber 10.
  • the aluminum leakage seal 41 extends in a plane between the motor assembly and the pump housing 1 and forms in the central region of an L-shaped collar 44, which accommodates the pump housing 1 for the ball bearing 28 radially surrounds and protrudes in the direction of the electric motor 2.
  • drops can pass through the ball bearing 28 of the pump shaft 21 to the rotor 26 or the stator 25 of the electric motor 2.
  • the penetrated droplets evaporate in the motor assembly, especially if they come into contact with the components that are at operating temperature.
  • An increased pressure in the ECU chamber 30 may be increased by the pressure in the Fig. 8 illustrated membrane 38, which is a gas-tight but liquid-tight membrane 38, which terminates an opening in the ECU chamber 30, escape to the outside.
  • a vacuum builds up in the engine assembly, it may in turn be balanced in reverse order through the diaphragm 38 on the ECU chamber and over the passage 15 without moisture entering the ECU chamber 30.
  • an electric motor 2 of the inner rotor type is used.
  • an outer-rotor-type electric motor 2 may be used as well, as long as a lead is provided for the central stator by the motor housing 27 and the pump housing 1, as set by the bus bar 35 in the illustrated embodiment.
  • the ECU chamber 30 and the inlet may be separately formed.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Microelectronics & Electronic Packaging (AREA)
  • Power Engineering (AREA)
  • Structures Of Non-Positive Displacement Pumps (AREA)
EP16757006.8A 2015-09-03 2016-08-22 Elektrische kühlmittelpumpe mit strömungsgekühlter steuerschaltung Active EP3344876B1 (de)

Priority Applications (1)

Application Number Priority Date Filing Date Title
PL16757006T PL3344876T3 (pl) 2015-09-03 2016-08-22 Elektryczna pompa czynnika chłodzącego z chłodzonym przepływem układem sterowania

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102015114783.1A DE102015114783B3 (de) 2015-09-03 2015-09-03 Elektrische Kühlmittelpumpe mit strömungsgekühlter Steuerschaltung
PCT/EP2016/069795 WO2017036837A1 (de) 2015-09-03 2016-08-22 Elektrische kühlmittelpumpe mit strömungsgekühlter steuerschaltung

Publications (2)

Publication Number Publication Date
EP3344876A1 EP3344876A1 (de) 2018-07-11
EP3344876B1 true EP3344876B1 (de) 2019-10-30

Family

ID=56800282

Family Applications (1)

Application Number Title Priority Date Filing Date
EP16757006.8A Active EP3344876B1 (de) 2015-09-03 2016-08-22 Elektrische kühlmittelpumpe mit strömungsgekühlter steuerschaltung

Country Status (8)

Country Link
US (1) US20180238348A1 (hu)
EP (1) EP3344876B1 (hu)
KR (1) KR102116084B1 (hu)
CN (1) CN107923406B (hu)
DE (1) DE102015114783B3 (hu)
HU (1) HUE048030T2 (hu)
PL (1) PL3344876T3 (hu)
WO (1) WO2017036837A1 (hu)

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DE102016219418A1 (de) * 2016-10-06 2018-04-12 Mahle International Gmbh Flüssigkeitspumpe
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DE102016122702B4 (de) 2016-11-24 2023-11-16 Nidec Gpm Gmbh Elektrische Kühlmittelpumpe mit ECU-Kühlung
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JP6518273B2 (ja) * 2017-02-14 2019-05-22 シナノケンシ株式会社 電動ポンプ
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DE102017127574B3 (de) 2017-11-22 2019-02-21 Nidec Gpm Gmbh Kühlmittelpumpe mit anwendungsoptimiertem Aufbau und verbessertem Wärmehaushalt
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DE102018219253A1 (de) * 2018-11-12 2020-05-14 KSB SE & Co. KGaA Elektromotor
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DE102015114783B3 (de) 2016-09-22
CN107923406B (zh) 2019-11-08
HUE048030T2 (hu) 2020-05-28
US20180238348A1 (en) 2018-08-23
EP3344876A1 (de) 2018-07-11
CN107923406A (zh) 2018-04-17
PL3344876T3 (pl) 2020-04-30
KR20180030905A (ko) 2018-03-26
KR102116084B1 (ko) 2020-05-28
WO2017036837A1 (de) 2017-03-09

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